Search bioRxiv⌕ Search

Biology subjects

Brewer, T.

Publications and source records attributed to Brewer, T..

3 recordsLinked to original sources

A versatile dual reporter to identify ribosome pausing motifs alleviated by translation elongation factor P

Protein synthesis is influenced by the chemical and structural properties of the amino acids incorporated into the polypeptide chain. Motifs with consecutive prolines can slow down translation speed and cause ribosome stalling. Translation elongation factor P (EF-P) facilitates peptide bond formation in these motifs, thereby alleviating stalled ribosomes and restoring regular translational speed. Ribosome pausing at various polyproline motifs has been intensively studied using a range of sophisticated techniques, including ribosome profiling, proteomics, and in vivo screenings with reporters incorporated into the chromosome. However, the full spectrum of motifs which cause translational pausing in Escherichia coli has not yet been identified. Here we describe a plasmid-based dual reporter for rapid assessment of pausing motifs. This reporter contains two coupled genes encoding mScarlet-I and chloramphenicol acetyltransferase to screen motif libraries based on both bacterial fluorescence and survival. In combination with a diprolyl motif library, we use this reporter to reveal motifs of different pausing strengths in an E. coli strain lacking efp. Subsequently, we use the reporter for a high-throughput screen of four motif libraries, with and without prolines at different positions, sorted by fluorescence-associated cell sorting (FACS) and identify new motifs that influence translational efficiency of the fluorophore. Our study provides an in vivo platform for rapid screening of amino acid motifs that affect translational efficiencies.

molecular biology↗

EF-P and its paralog EfpL (YeiP) differentially control translation of proline containing sequences

Polyproline sequences (XPPX) stall ribosomes, thus being deleterious for all living organisms. In bacteria, translation elongation factor P (EF-P) plays a crucial role in overcoming such arrests. 12% of eubacteria possess an EF-P paralog - YeiP (EfpL) of unknown function. Here, we functionally and structurally characterize EfpL from Escherichia coli and demonstrate its yet unrecognized role in the translational stress response. Through ribosome profiling, we analyzed the EfpL arrest motif spectrum and discovered additional stalls beyond the canonical XPPX motifs at single-proline sequences (XPX), that both EF-P and EfpL can resolve. Notably, the two factors can also induce pauses. We further report that, contrary to the housekeeping EF-P, EfpL can sense the metabolic state of the cell, via lysine acylation. Together, our work uncovers a new player in ribosome rescue at proline-containing sequences, and provides evidence that co-occurrence of EF-P and EfpL is an evolutionary driver for higher bacterial growth rates.

microbiology↗

Horizontal gene transfer of a key translation protein has shaped the polyproline proteome

Prolines take longer than other amino acids to be incorporated into nascent proteins and cause ribosomes to stall during translation. This phenomenon occurs in all domains of life and is exacerbated at polyproline motifs. Such stalling can be eased by elongation factor P (EFP) in bacteria. We discovered a potential connection between horizontally transferred EFP variants and genomic signs of EFP dysfunction. Horizontal transfer of the efp gene has occurred several times throughout the bacterial tree of life, and such transfer events are associated with the loss of otherwise highly conserved polyproline motifs. In this study, we pinpoint cases of horizontal EFP transfer among a diverse set of bacterial genomes and examine the consequences of these events on genome evolution in the phyla Thermotogota and Planctomycetes. In these phyla, horizontal EFP transfer is not only associated with the loss of conserved polyproline motifs, but also with the loss of entire polyproline motif containing proteins, whose expression is likely dependent on EFP. In particular, three proteases (Lon, ClpC, and FtsH) and three tRNA synthetases (ValS, IleS1, IleS2) appear highly sensitive to EFP transfer. The conserved polyproline motifs within these proteins all reside within, or in close proximity to ATP binding regions, some of which have been shown to be crucial to their function. Our work shows that the horizontal transfer of EFP has left genomic traces that persist to this day. It also implies that the process of domesticating a horizontally transferred efp gene can perturb the overall function of EFP.

evolutionary biology↗